HR: 1340h
AN: V33E-1501 [Abstracts]
TI: Mantle End-Members: The Trace Element Perspective
AU: * Willbold, M
EM: willbold@mpch-mainz.mpg.de
AF: Max Planck Institut fuer Chemie, Postfach 3060
, Mainz, 55020
Germany
AU: Stracke, A
AF: Max Planck Institut fuer Chemie, Postfach 3060
, Mainz, 55020
Germany
AU: Hofmann, A W
AF: Max Planck Institut fuer Chemie, Postfach 3060
, Mainz, 55020
Germany
AB:
On the basis of their isotopic composition, ocean island basalts (OIB) have been classified into three to four end-members;
HIMU with the most radiogenic Pb isotope ratios of OIB and Enriched Mantle 1 and 2 (EM1, EM2) with less radiogenic but
variable Pb isotope and highly radiogenic Sr isotope signatures. It has also been argued that each of these isotopic families
has common trace element characteristics that distinguish them from one another and so substantiated this classification.
Here, we present new high-precision trace element data for samples from St. Helena, Tristan da Cunha and Gough in the
Atlantic Ocean. The overall data-set is augmented by OIB data from the GEOROC database and includes data from all major
isotopic families (HIMU: St. Helena, Mangaia, Tubuai, and Rururtu; EM1: Tristan da Cunha, Gough, Pitcairn; and EM2: Samoa,
Marquesas, and Society). For each locality we use only islands defining the most extreme isotopic compositions. The entire
data-set has been screened to exclude altered and highly differentiated samples.
HIMU basalts have a very uniform trace element composition. Compared to HIMU-type basalts, EM-type basalts are enriched in
Rb, Ba, and K, and depleted in U, Nb, and Ta, relative to La. Different EM-type OIBs from the same isotopic family (EM1 or
EM2), have distinct trace element characteristics that can ultimately only be caused by different source compositions. For
example, Ba/Th ratios in samples from both Tristan da Cunha (EM1) and Samoa (EM2) are similarly high (ca. 110) whereas Ba/Th
ratios in samples from Pitcairn (EM1) and Society (EM2) samples are consistently lower (ca. 70). Thus on the basis of their
trace element composition, EM-type OIB cannot be classified into EM1 and EM2 type basalts, nor can any other grouping be
identified.
The remarkably uniform isotopic and trace element composition of HIMU-type basalts suggests derivation from a single common
source reservoir, most likely subduction-modified oceanic crust. Although there are some trace element characteristics common
to all EM-type basalts, which distinguish them from HIMU-type basalts (e.g. uniformly high Th/U ratios of 4.7 $\pm$ 0.3, and
enrichment in Cs-U), each suite of EM-type basalts has unique trace element signatures that distinguish them from any other
suite of EM-type basalts. This is especially obvious when comparing the trace element composition of EM basalts from one
isotopic family, for example EM1-type basalts from Tristan, Gough and Pitcairn.
Consequently, the trace element systematics of EM-type basalts suggest that there are many different EM-type sources, whereas
the isotopic composition of EM-type basalts suggest derivation from two broadly similar sources, i.e. EM1 and EM2. The large
variability in subducting sediments with respect to both parent-daughter (e.g. Rb/Sr, Sm/Nd, U/Pb, Th/Pb,...) and other
trace element ratios makes it unlikely that there are reproducible mixtures of sediments leading to two different isotopic
evolution paths (EM1 and EM2) while preserving a range of incompatible element contents for each isotopic family, as would be
required to reconcile the isotopic and trace element characteristics of EM-type basalts. Although this does not a priori
argue against sediments as possible source components for OIB, it does argue against two distinct groups of sediments as EM1
and EM2 sources. Further characterization of sources with the same general origin (e.g. a certain type of crust or
lithosphere) or identification of processes leading to reservoirs with similar parent-daughter ratio characteristics but
different incompatible trace element contents could resolve the apparent conundrum.
DE: 1025 Composition of the mantle
DE: 1040 Isotopic composition/chemistry
DE: 1065 Trace elements (3670)
DE: 1010 Chemical evolution
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2004 AGU Fall Meeting